State Key Laboratory of Brain and Cognitive Science, Institute of Psychology, Chinese Academy of Sciences, Beijing, China.
Department of Psychology, University of Chinese Academy of Sciences, Beijing, China.
Nat Commun. 2024 Nov 7;15(1):9606. doi: 10.1038/s41467-024-53968-x.
Most vertebrates, including humans, are highly adept at detecting and encoding biological motion, even when it is portrayed by just a few point lights attached to the head and major joints. However, the function of subcortical regions in biological motion perception has been scarcely explored. Here, we investigate the role of the superior colliculus in local biological motion processing. Using high-field (3 T) and ultra-high-field (7 T) functional magnetic resonance imaging, we record the neural responses of the superior colliculus to scrambled point-light walkers (with local kinematics retained) in both humans and male macaque monkeys. Results show that the superior colliculus, especially the superficial layers, selectively responds to local biological motion. Furthermore, dynamic causal modeling analysis reveals a subcortical-cortical functional pathway that transmits local biological motion signals from the superior colliculus via the middle temporal visual complex to the posterior superior temporal sulcus in the human brain. These findings suggest the existence of a cross-species mechanism in the superior colliculus that facilitates the detection of local biological motion at the early stage of the visual processing stream.
大多数脊椎动物,包括人类,都非常擅长检测和编码生物运动,即使它只是由头部和主要关节上的几个光点来描绘。然而,皮层下区域在生物运动感知中的功能还很少被探索。在这里,我们研究了上丘在局部生物运动处理中的作用。使用高磁场(3T)和超高磁场(7T)功能磁共振成像,我们记录了人类和雄性猕猴上丘对乱序点光步行者(保留局部运动学)的神经反应。结果表明,上丘,特别是浅层,对局部生物运动有选择性反应。此外,动态因果建模分析揭示了一个从上丘通过中颞视觉复合体到人类大脑后上颞回的皮层下-皮层功能通路,该通路传递局部生物运动信号。这些发现表明,在视觉处理流的早期阶段,上丘中存在一种跨物种的机制,有助于检测局部生物运动。